Full Text:   <3449>

Summary:  <2080>

CLC number: TU991.21

On-line Access: 2024-08-27

Received: 2023-10-17

Revision Accepted: 2024-05-08

Crosschecked: 2017-03-09

Cited: 0

Clicked: 4569

Citations:  Bibtex RefMan EndNote GB/T7714

 ORCID:

Jing-qing Liu

http://orcid.org/0000-0001-5596-0365

Li-ping Lou

http://orcid.org/0000-0002-5148-9323

-   Go to

Article info.
Open peer comments

Journal of Zhejiang University SCIENCE A 2017 Vol.18 No.4 P.313-328

http://doi.org/10.1631/jzus.A1600316


Effect of flushing on the detachment of biofilms attached to the walls of metal pipes in water distribution systems


Author(s):  Jing-qing Liu, Zhi-feng Luo, Ke Liu, Yi-fu Zhang, Hong-xi Peng, Bao-lan Hu, Hong-xing Ren, Xiao-yan Zhou, Shang-de Qiu, Xiao-fang He, Ping Ye, Hamid Bastani, Li-ping Lou

Affiliation(s):  College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China; more

Corresponding email(s):   loulp@zju.edu.cn

Key Words:  Drinking water distribution system (DWDS), Biofilms, Flushing, Metal pipe


Share this article to: More <<< Previous Article|

Jing-qing Liu, Zhi-feng Luo, Ke Liu, Yi-fu Zhang, Hong-xi Peng, Bao-lan Hu, Hong-xing Ren, Xiao-yan Zhou, Shang-de Qiu, Xiao-fang He, Ping Ye, Hamid Bastani, Li-ping Lou. Effect of flushing on the detachment of biofilms attached to the walls of metal pipes in water distribution systems[J]. Journal of Zhejiang University Science A, 2017, 18(4): 313-328.

@article{title="Effect of flushing on the detachment of biofilms attached to the walls of metal pipes in water distribution systems",
author="Jing-qing Liu, Zhi-feng Luo, Ke Liu, Yi-fu Zhang, Hong-xi Peng, Bao-lan Hu, Hong-xing Ren, Xiao-yan Zhou, Shang-de Qiu, Xiao-fang He, Ping Ye, Hamid Bastani, Li-ping Lou",
journal="Journal of Zhejiang University Science A",
volume="18",
number="4",
pages="313-328",
year="2017",
publisher="Zhejiang University Press & Springer",
doi="10.1631/jzus.A1600316"
}

%0 Journal Article
%T Effect of flushing on the detachment of biofilms attached to the walls of metal pipes in water distribution systems
%A Jing-qing Liu
%A Zhi-feng Luo
%A Ke Liu
%A Yi-fu Zhang
%A Hong-xi Peng
%A Bao-lan Hu
%A Hong-xing Ren
%A Xiao-yan Zhou
%A Shang-de Qiu
%A Xiao-fang He
%A Ping Ye
%A Hamid Bastani
%A Li-ping Lou
%J Journal of Zhejiang University SCIENCE A
%V 18
%N 4
%P 313-328
%@ 1673-565X
%D 2017
%I Zhejiang University Press & Springer
%DOI 10.1631/jzus.A1600316

TY - JOUR
T1 - Effect of flushing on the detachment of biofilms attached to the walls of metal pipes in water distribution systems
A1 - Jing-qing Liu
A1 - Zhi-feng Luo
A1 - Ke Liu
A1 - Yi-fu Zhang
A1 - Hong-xi Peng
A1 - Bao-lan Hu
A1 - Hong-xing Ren
A1 - Xiao-yan Zhou
A1 - Shang-de Qiu
A1 - Xiao-fang He
A1 - Ping Ye
A1 - Hamid Bastani
A1 - Li-ping Lou
J0 - Journal of Zhejiang University Science A
VL - 18
IS - 4
SP - 313
EP - 328
%@ 1673-565X
Y1 - 2017
PB - Zhejiang University Press & Springer
ER -
DOI - 10.1631/jzus.A1600316


Abstract: 
Biofilm detachment caused by flushing can result in secondary contamination in drinking water distribution systems (DWDSs). To evaluate the impact of flushing on biofilm detachment, actual water supply pipes including ductile cast iron pipes (DCIPs), gray cast iron pipes (GCIPs), and stainless steel compound pipes (SSCPs) were used in this study. Real-time quantitative polymerase chain reaction and 454 pyrosequencing were used to quantify bacteria and analyse microbial community composition, respectively. The results showed that the pipe material greatly influences the resistance of a biofilm to flushing. biofilms attached to DCIPs were able to resist quite strong flushing, while those attached to GCIPs and SSCPs were sensitive to flushing. Both flush-resistant and flush-sensitive bacteria were present in all the biofilms, but their frequency differed among the different metal pipes. Thus, the resistance to flushing of bacteria is related not only to the nature of the bacteria, but also to the pipe material. Although flushing can remove some of the biofilm and may be a good way to clean the DWDS, the shear stress needed to remove the biofilm differs among different pipe types. The results of this study provide technical support for the management and operation of DWDS.

The paper presents some good work extending knowledge on biofilms in distribution systems and follows previous publications by the contact author researching these aspects in China (e.g. Pyrosequencing analysis of bacterial communities in biofilms from different pipe materials in a city drinking water distribution system of East China (2015) & Impact of pipe materials on bacterial population diversity in drinking water biofilm (2015)). It is generally well written and includes relevant references. The sample size is sufficient for this study, although perhaps samples from locations with different water supply characteristics could help reinforce the findings.

供水系统中冲刷对金属管道内壁生物膜脱落的影响作用

目的:在市政供水管网系统中,由冲刷引起的管道内壁生物膜脱落可能造成饮用水二次污染。本文旨在通过研究冲刷前后生物膜理化特性和微生物种群结构的变化,探讨不同金属管材管道和不同冲刷流速对生物膜脱落的影响,从而为管道生物安全的风险评估提供科学依据。
创新点:不同菌属的细菌对水力冲刷的敏感程度不同;各菌属对水力变化的敏感程度既与菌属本身的性质有关,也与其附着生长的管材有关。
方法:1. 采用R2A培养基平板计数、16S rDNA检测、荧光定量聚合酶链式反应及454焦磷酸测序技术。2. 通过理化指标检测与测序相结合的方式进行分析,并以丰度图和热度图的形式呈现结果。
结论:1. 球墨铸铁管内壁生物膜的抗水力剪切能力较强,能够抵抗低剪切冲刷,在高剪切力冲刷后才会明显脱落,而灰口铸铁管和不锈钢复合管内壁生物膜的抗水力剪切能力较弱,低剪切力冲刷工况便会导致生物膜的明显脱落。2. 生物膜对冲刷的抵抗作用在其群落的属水平和纲水平上有显著变化,这与群落本身和管材特性均有关联。

关键词:供水管网系统;生物膜;冲刷;金属管道

Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article

Reference

[1]Abe, Y., Skali-Lami, S., Block, J., et al., 2012. Cohesiveness and hydrodynamic properties of young drinking water biofilms. Water Research, 46(4):1155-1166.

[2]Beech, I.B., Sunner, J., 2004. Biocorrosion: towards understanding interactions between biofilms and metals. Current Opinion in Biotechnology, 15(3):181-186.

[3]Bryers, J.D., 1988. Modeling biofilm accumulation. Physiological Models in Microbiology, 2:109-144.

[4]Chen, X., Stewart, P.S., 2002. Role of electrostatic interactions in cohesion of bacterial biofilms. Applied Microbiology and Biotechnology, 59(6):718-720.

[5]Choi, Y.C., Morgenroth, E., 2003. Monitoring biofilm detachment under dynamic changes in shear stress using laser-based particle size analysis and mass fractionation. Water Science & Technology, 47:69-76.

[6]Derlon, N., Massé, A., Escudié, R., et al., 2008. Stratification in the cohesion of biofilms grown under various environmental conditions. Water Research, 42(8-9):2102-2110.

[7]Douterelo, I., Sharpe, R.L., Boxall, J.B., 2013. Influence of hydraulic regimes on bacterial community structure and composition in an experimental drinking water distribution system. Water Research, 47(2):503-516.

[8]Douterelo, I., Husband, S., Boxall, J.B., 2014. The bacteriological composition of biomass recovered by flushing an operational drinking water distribution system. Water Research, 54:100-114.

[9]Edwards, M., 2013. Relationship between Biodegradable Organic Matter and Pathogen Concentrations in Premise Plumbing. Water Reserch Foundation, Denver, USA.

[10]Horn, H., Reiff, H., Morgenroth, E., 2003. Simulation of growth and detachment in biofilm systems under defined hydrodynamic conditions. 81(5):607-617.

[11]Hu, B., Rush, D., van der Biezen, E., et al., 2011. New anaerobic, ammonium-oxidizing community enriched from peat soil. Applied and Environmental Microbiology, 77(3):966-971.

[12]Hu, B.L., Shen, L.D., Zheng, P., et al., 2012. Distribution and diversity of anaerobic ammonium-oxidizing bacteria in the sediments of the Qiantang River. Environmental Microbiology Reports, 4(5):540-547.

[13]Hunt, S.M., Werner, E.M., Huang, B., et al., 2004. Hypothesis for the role of nutrient starvation in biofilm detachment. Applied and Environmental Microbiology, 70(12):7418-7425.

[14]Husband, P.S., Boxall, J.B., 2011. Asset deterioration and discolouration in water distribution systems. Water Research, 45(1):113-124.

[15]Labib, M.E., Lai, C., 2000. Cleaning Method for Removing Biofilm and Debris from Lines and Tubing. US Patent 6619302.

[16]LeChevallier, M.W., 1999. Biofilms in the Aquatic Environment. Royal Society of Chemistry, Cambridge, UK, p.220-230.

[17]Lehtola, M.J., Torvinen, E., Kusnetsov, J., et al., 2007. Survival of Mycobacterium avium, Legionella pneumophila, Escherichia coli, and Caliciviruses in drinking water-associated biofilms grown under high-shear turbulent flow. Applied and Environmental Microbiology, 73(9):2854-2859.

[18]Liu, G., Bakker, G.L., Li, S., et al., 2014. Pyrosequencing reveals bacterial communities in unchlorinated drinking water distribution system: an integral study of bulk water, suspended solids, loose deposits, and pipe wall biofilm. Environmental Science & Technology, 48(10):5467-5476.

[19]Liu, S., Shen, L., Lou, L., et al., 2013. Spatial distribution and factors shaping the niche segregation of ammonia-oxidizing microorganisms in the Qiantang River, China. Applied and Environmental Microbiology, 79(13):4065-4071.

[20]Manuel, C.M., Nunes, O.C., Melo, L.F., 2009. Unsteady state flow and stagnation in distribution systems affect the biological stability of drinking water. Biofouling, 26(2):129-139.

[21]Martiny, A.C., Albrechtsen, H., Arvin, E., et al., 2005. Identification of bacteria in biofilm and bulk water samples from a nonchlorinated model drinking water distribution system: detection of a large nitrite-oxidizing population associated with Nitrospira spp. Applied and Environmental Microbiology, 71(12):8611-8617.

[22]Mathieu, L., Bertrand, I., Abe, Y., et al., 2014. Drinking water biofilm cohesiveness changes under chlorination or hydrodynamic stress. Water Research, 55:175-184.

[23]Möhle, R.B., Langemann, T., Haesner, M., et al., 2007. Structure and shear strength of microbial biofilms as determined with confocal laser scanning microscopy and fluid dynamic gauging using a novel rotating disc biofilm reactor. Biotechnology and Bioengineering, 98(4):747-755.

[24]Muyzer, G., de Waal, E.C., Uitterlinden, A.G., 1993. Profiling of complex microbial populations by denaturing gradient gel electrophoresis analysis of polymerase chain reaction-amplified genes coding for 16S rRNA. Applied and Environmental Microbiology, 59(3):695-700.

[25]Nawrocki, J., Raczyk-Stanisławiak, U., Świetlik, J., et al., 2010. Corrosion in a distribution system: steady water and its composition. Water Research, 44(6):1863-1872.

[26]Oh, Y.J., Lee, N.R., Jo, W., et al., 2009. Effects of substrates on biofilm formation observed by atomic force microscopy. Ultramicroscopy, 109(8):874-880.

[27]Paul, E., Ochoa, J.C., Pechaud, Y., et al., 2012. Effect of shear stress and growth conditions on detachment and physical properties of biofilms. Water Research, 46(17):5499-5508.

[28]Peyton, B.M., Characklis, W.G., 1993. A statistical analysis of the effect of substrate utilization and shear stress on the kinetics of biofilm detachment. Biotechnology and Bioengineering, 41(7):728-735.

[29]Reasoner, D.J., Geldreich, E.E., 1985. A new medium for the enumeration and subculture of bacteria from potable water. Applied and Environmental Microbiology, 49(1):1-7.

[30]Revetta, R.P., Gomez-Alvarez, V., Gerke, T.L., et al., 2013. Establishment and early succession of bacterial communities in monochloramine-treated drinking water biofilms. FEMS Microbiology Ecology, 86(3):404-414.

[31]Rittman, B.E., 1982. The effect of shear stress on biofilm loss rate. Biotechnology and Bioengineering, 24(2):501-506.

[32]Sanin, S.L., Sanin, F.D., Bryers, J.D., 2003. Effect of starvation on the adhesive properties of xenobiotic degrading bacteria. Process Biochemistry, 38(6):909-914.

[33]Sarin, P., Snoeyink, V.L., Bebee, J., et al., 2004. Iron release from corroded iron pipes in drinking water distribution systems: effect of dissolved oxygen. Water Research, 38(5):1259-1269.

[34]Shen, L., Liu, S., Zhu, Q., et al., 2014. Distribution and diversity of nitrite-dependent anaerobic methane-oxidising bacteria in the sediments of the Qiantang River. Microbial Ecology, 67(2):341-349.

[35]Simões, L.C., Simões, M., Oliveira, R., et al., 2007. Potential of the adhesion of bacteria isolated from drinking water to materials. Journal of Basic Microbiology, 47(2):174-183.

[36]Stewart, P.S., 1993. A model of biofilm detachment. Biotechnology and Bioengineering, 41(1):111-117.

[37]Szewzyk, U., Szewzyk, R., Manz, W., et al., 2000. Microbiological safety of drinking water. Annual Review of Microbiology, 54(1):81-127.

[38]Thayanukul, P., Kurisu, F., Kasuga, I., et al., 2013. Evaluation of microbial regrowth potential by assimilable organic carbon in various reclaimed water and distribution systems. Water Research, 47(1):225-232.

[39]Wang, W., Ren, H.X., Hu, Z.C., et al., 2015. Impact of pipe materials on bacterial population diversity in drinking water biofilm. Acta Scientiae Circumstantiae, 35(3):699-704 (in Chinese).

Open peer comments: Debate/Discuss/Question/Opinion

<1>

Please provide your name, email address and a comment





Journal of Zhejiang University-SCIENCE, 38 Zheda Road, Hangzhou 310027, China
Tel: +86-571-87952783; E-mail: cjzhang@zju.edu.cn
Copyright © 2000 - 2024 Journal of Zhejiang University-SCIENCE